We present an investigation into the role of anode grid pitch and excitation spectrum on the performance of high-power optoelectronic switches utilizing Fe-doped β-Ga2O3. By systematically varying the anode grid pitch (20−80μm) and the excitation spectrum (235−500nm), we identify a crucial sub-bandgap regime, centered at 272nm, that effectively activates deep-level defect states. This activation is shown to enable highly efficient bulk carrier transport, a significant contrast to conventional above-bandgap excitation which is hampered by shallow surface absorption. The sub-bandgap illumination promotes strong photocurrent generation and substantially improved carrier collection efficiency. Under optimized conditions, specifically utilizing a 40μm anode pitch, the fabricated device achieves a high peak photocurrent of 4.14A and a record-low on-resistance of 10.4Ω. To quantify this simultaneous high-performance achievement, we introduce a responsivity-conductance figure of merit (FoMRC), which attains a record value of 4.7×10−6S/W. These findings robustly demonstrate the superior suitability of Fe-doped β-Ga2O3 for next-generation high-power optoelectronic switching applications, enabling reliable ampere-level photocurrents coupled with minimized on-resistance through strategic device geometry optimization and sub-bandgap excitation.
@article{arxiv.2512.13983,
title = {Record Responsivity-conductance Performance in Sub-bandgap-triggered Ga2O3 PCSS},
author = {Vikash Jangir and Sourojit K. Mazumder and Sudip K. Mazumder},
journal= {arXiv preprint arXiv:2512.13983},
year = {2025}
}